Ellicott City, MD, United States of America

Steven Wesley Winn


Average Co-Inventor Count = 3.0

ph-index = 1

Forward Citations = 170(Granted Patents)


Company Filing History:


Years Active: 2005

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1 patent (USPTO):Explore Patents

Title: The Innovations of Steven Wesley Winn

Introduction

Steven Wesley Winn is an accomplished inventor based in Ellicott City, MD (US). He has made significant contributions to the field of dielectric materials, particularly through his innovative patent. His work focuses on enhancing the properties of tunable dielectric compositions, which are essential in various electronic applications.

Latest Patents

Winn holds a patent for "Tunable dielectric compositions including low loss glass." This invention includes electronically tunable dielectric ceramics and low loss glass additives. The tunable dielectric may comprise a ferroelectric perovskite material, such as barium strontium titanate. The glass additive consists of boron, barium, calcium, lithium, manganese, silicon, zinc, and/or aluminum-containing glasses, which exhibit dielectric losses of less than 0.003 at 2 GHz. The materials may also include non-tunable metal oxides and silicates. The low loss glass additive allows for sintering at relatively low temperatures while providing improved properties, such as low microwave losses and high breakdown strengths.

Career Highlights

Winn is associated with Paratek Microwave Incorporated, where he applies his expertise in developing advanced dielectric materials. His innovative approach has positioned him as a key figure in the field of microwave technology.

Collaborations

Winn has collaborated with notable colleagues, including Marion Edmond Ellis and Luna H Chiu. Their combined efforts contribute to the advancement of dielectric materials and their applications in various technologies.

Conclusion

Steven Wesley Winn's contributions to the field of tunable dielectric compositions highlight his innovative spirit and dedication to advancing technology. His patent reflects a significant step forward in the development of materials that enhance electronic performance.

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